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Robust tracking and behavioral modeling of movements of biological collectives from ordinary video recordings

机译:从普通视频记录中对生物集体的运动进行稳健的跟踪和行为建模

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We propose a novel computational method to extract information about interactions among individuals with different behavioral states in a biological collective from ordinary video recordings. Assuming that individuals are acting as finite state machines, our method first detects discrete behavioral states of those individuals and then constructs a model of their state transitions, taking into account the positions and states of other individuals in the vicinity. We have tested the proposed method through applications to two real-world biological collectives: termites in an experimental setting and human pedestrians in a university campus. For each application, a robust tracking system was developed in-house, utilizing interactive human intervention (for termite tracking) or online agent-based simulation (for pedestrian tracking). In both cases, significant interactions were detected between nearby individuals with different states, demonstrating the effectiveness of the proposed method.
机译:我们提出了一种新颖的计算方法,可以从普通的视频记录中提取有关生物集体中具有不同行为状态的个体之间相互作用的信息。假设个体正在充当有限状态机,我们的方法首先检测这些个体的离散行为状态,然后考虑附近其他个体的位置和状态,构建其状态转变的模型。我们已经通过将其应用于两个现实世界的生物集体来测试了该方法的有效性:实验环境中的白蚁和大学校园中的行人。对于每种应用,公司都在内部开发了一个强大的跟踪系统,它利用了交互式的人工干预(用于白蚁跟踪)或基于在线代理的模拟(用于行人跟踪)。在这两种情况下,在状态不同的附近个体之间都检测到了显着的交互作用,证明了所提出方法的有效性。

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